The log-linear Birnbaum-Saunders model has been widely used in empirical applications. We introduce an extension of this model based on a recently proposed version of the Birnbaum-Saunders distribution which is more flexible than the standard Birnbaum-Saunders law since its density may assume both unimodal and bimodal shapes. We show how to perform point estimation, interval estimation and hypothesis testing inferences on the parameters that index the regression model we propose. We also present a number of diagnostic tools, such as residual analysis, local influence, generalized leverage, generalized Cook's distance and model misspecification tests. We investigate the usefulness of model selection criteria and the accuracy of prediction intervals for the proposed model. Results of Monte Carlo simulations are presented. Finally, we also present and discuss an empirical application.
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Univ Estadual Oeste Parana, Postgrad Program Agr Engn, Cascavel, Brazil
Univ Estadual Oeste Parana, Ctr Exact Sci & Technol, Cascavel, BrazilUniv Estadual Oeste Parana, Postgrad Program Agr Engn, Cascavel, Brazil
Garcia-Papani, Fabiana
Leiva, Victor
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Pontificia Univ Catolica Valparaiso, Sch Ind Engn, Valparaiso, ChileUniv Estadual Oeste Parana, Postgrad Program Agr Engn, Cascavel, Brazil
Leiva, Victor
Uribe-Opazo, Miguel A.
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Univ Estadual Oeste Parana, Postgrad Program Agr Engn, Cascavel, Brazil
Univ Estadual Oeste Parana, Ctr Exact Sci & Technol, Cascavel, BrazilUniv Estadual Oeste Parana, Postgrad Program Agr Engn, Cascavel, Brazil
Uribe-Opazo, Miguel A.
Aykroyd, Robert G.
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Univ Leeds, Dept Stat, Leeds, W Yorkshire, EnglandUniv Estadual Oeste Parana, Postgrad Program Agr Engn, Cascavel, Brazil